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Bogacz, M.

Publications and source records attributed to Bogacz, M..

3 recordsLinked to original sources

Computational prediction resolves thousands of homooligomeric phage protein structures

Bacteriophages (phages) play essential roles in microbial systems, yet most phage proteins remain poorly characterised. Protein tertiary and quaternary structure information contributes valuable information about protein function. As many phage proteins function as homooligomers, complexes that consist of multiple identical subunits, there is great interest in computationally predicting their configurations. Here we present a computational framework, the Phage Homomer Level Estimate and Generation Method (PHLEGM) for inferring homooligomeric states directly from the protein sequence by combining AlphaFold-Multimer modelling with inter-subunit interface quality assessment. We proceeded to experimentally validate two out of nine predicted homooligomers using size exclusion chromatography and complementary hydrodynamic techniques. These efforts confirmed our predictions for a dimer and a trimer, highlighting the value of experimentally benchmarked computational predictions and showing the challenges of heterologous phage protein production. Applied to >22,000 phage protein sequences in the PHROGs database, our approach revealed extensive diversity in phage homooligomeric protein complexes. Benchmarking against protein language model-based predictors on a curated reference set of known phage homooligomers demonstrated superior accuracy of our structure-based method, achieving robust performance in classifying protein homooligomeric states, with the highest accuracy observed for trimers and higher-order complexes. These results highlight the value of computational predictions to decipher the complexities of the vast viral sequence space. All predicted complex structures and functional inferences are made publicly available to support structural and functional studies of phage proteins.

microbiology↗

Mapping affinity and allostery in human IgG antibody Fc region-Fc γ receptor interactions

IgG antibodies, required for a functional immune system, recognize antigens and neutralize pathogens using their Fab regions, while signaling to the immune system by binding to host Fc {gamma} receptors (Fc{gamma}Rs) through their Fc regions. These Fc{gamma}R interactions initiate and modulate antibody-mediated effector functions that are essential for host immunity, therapeutic monoclonal antibody effectiveness and IgG-mediated pathologies. Fc{gamma}Rs include both activating and inhibitory receptors and the relative binding affinities of the IgG Fc region to Fc{gamma}Rs that generate opposing signals is a key determinant of the immune response. Substantial research effort has been devoted to understanding and manipulating Fc{gamma}R interactions to decipher their fundamental biological activities and to develop therapeutic monoclonal antibodies with tailored effector functions. However, a common Fc-Fc{gamma}R binding interface, the high sequence identity of Fc{gamma}Rs, and the inherent conformational dynamics of the IgG Fc region, have prohibited a full understanding of these interactions, even when employing state-of-the-art biophysical and biological methods. Here, we used site-saturation libraries of the human IgG1 Fc region to determine the effective affinities of more than 98% of all possible single-site amino acid substitutions in the Fc to all human Fc{gamma}Rs, as well as the most common Fc{gamma}R polymorphisms. We provide a comprehensive analysis of Fc amino acid variations that determine Fc stability, orthosteric control of Fc{gamma}R binding, and short- and long-range allosteric control of Fc{gamma}R binding. We also predict the relative activating versus inhibitory effector function capacity of nearly every possible single-site Fc mutation.

biochemistry↗

Efficacy of Biofilm Disrupters Against Candida auris and Other Candida species

BackgroundC. auris has become a globally emerging fungal pathogen, frequently reported to be multi-drug resistant, commonly found with Staphylococcus aureus in polymicrobial nosocomial infections. Although chlorhexidine (CHD) has been shown to be effective, it is associated with serious anaphylaxis reactions. Biofilm disrupters (BDs) are novel agents with a broad spectrum of antimicrobial activity. BDs have been used in the management of chronic wounds and to sterilize environmental surfaces. The goal of this study was to evaluate BDs against polymicrobial biofilms compared to CHD. MethodologyWe evaluated various BDs (BlastX, Torrent, NSSD) and CHD against Candida spp and S. aureus polymicrobial biofilms by zone of inhibition, biofilm, and time-kill assays. Effectiveness was based on the inhibition zone and the reduction of CFU, respectively, compared to the drug-free control. ResultsAll BDs and CHD inhibited C. auris growth effectively in a concentration-dependent manner. Additionally, CHD and the BDs all showed excellent antimicrobial activity against polymicrobial biofilms. BDs were all highly effective against both C. auris isolates, whereas CHD was only moderately effective against C. auris 0386, suggesting resistance/tolerance. A comparative analysis of the BDs and CHD against C. auris and C. albicans by biofilm kill-curves showed at least 99.999% killing. ConclusionsAll three BDs and CHD have excellent activity against different Candida species, including C. auris. However, certain isolates of C. auris showed resistance/tolerance to CHD, but not to the BDs. The fungicidal activity of these novel agents will be valuable in eradicating surface colonization of Candida spp, including C. auris.

microbiology↗